层压
材料科学
钙钛矿(结构)
光电子学
图层(电子)
能量转换效率
复合材料
温度测量
瞬态(计算机编程)
超短脉冲
衍射
电子工程
制作
过程(计算)
粒度
吞吐量
电极
电流(流体)
光伏系统
热的
传热
电阻率和电导率
作者
Oluka Okia,Md Aslam Uddin,Tianhan Gao,Zhihang Zhang,Vaishnav Madhava Das,Clare Lanaghan,Alexandra C. Hurd,Wei Lu,David P. Fenning,Neil P. Dasgupta
标识
DOI:10.1002/admt.202502474
摘要
ABSTRACT Perovskite solar cells (PSCs) are traditionally fabricated using sequential layer‐by‐layer deposition, in which each layer of the device is processed on top of the preceding layer. This constrains the processing techniques and selection of transport layer materials that can be used in the solar cell. To overcome these challenges, two half‐cells can be processed independently and then diffusion‐bonded through a lamination process. However, current lamination processes for perovskite solar cells suffer from relatively long process times, which can limit throughput when moving toward high‐volume manufacturing. In this study, a custom platform was designed for rapid‐joule heating of perovskite materials and devices. This enabled more than a 99% reduction in lamination time from 26 min to 1 s. Perovskite samples that were laminated in 1 s exhibited comparable values of percent bonded area, interfacial toughness, grain domain size, and X‐ray diffraction spectra to those laminated in greater than 10 min. As a proof‐of‐concept, 18.3% efficient devices were successfully laminated in 5 s. A transient heat transfer model was developed to describe the relationship between the perovskite temperature and the electrical power supplied to the heaters, establishing a baseline for predicting processing conditions in large‐scale manufacturing systems. Ultra‐fast lamination provides a pathway toward scalable roll‐to‐roll or sheet‐to‐sheet manufacturing of PSCs.
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